Effects of anisotropic magnetic susceptibility in data interpretation and potential in application

Zhuo Liu
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Abstract

Anisotropic magnetic susceptibility (AMS) contains information about the internal structure of magnetic geologic units and may have the potential to provide information about the formation history and subsequent geologic processes to which these units were subjected. Its application in the geological study has been established as a reliable tool in formation analyses. However, in the geophysical study, especially in magnetic data interpretation, there has not been much work on AMS, although its potential has been known for decades. Based on the current research status, the goal of this thesis is to assess the influence of AMS on induced magnetization and to explore the possibility of extracting structural information from magnetic data containing the influence of AMS. In this work, I review the basic mathematical expression of AMS and examine the rotation matrix through the derivation of Euler parameters. I show that the matrix can be directly formed by using the principal directions of the AMS within the user-defined coordinate system. Forward modeling of magnetic response over a synthetic AMS model shows that even at low susceptibility values, the induced magnetization direction can be rotated significantly away from the inducing field direction. A series of numerical experiments demonstrate that estimating source parameters directly from magnetic data in the presence AMS can recover the information of AMS and help to identify different magnetic units. The comparison between different constructions of rotation matrix provides us with a direct means to rotate AMS tensor for modeling purpose, while the forward modeling result shows that the interpretation of AMS-influenced data is faced with similar challenges as found in the cases of self-demagnetization due to high magnetic susceptibility or strong remanent magnetization. Parameter estimation studies show that it is possible to recover structural information through AMS from magnetic data without the assistance of laboratory measurements. This research opens the door for future work on magnetic data interpretation
各向异性磁化率对资料解释的影响及应用潜力
各向异性磁化率(AMS)包含有关磁性地质单元内部结构的信息,并可能提供有关这些单元所受的形成历史和后续地质过程的信息。它在地质研究中的应用已成为地层分析的可靠工具。然而,在地球物理研究中,特别是在磁资料解释方面,尽管AMS的潜力几十年来一直为人所知,但在这方面的工作还不多。基于目前的研究现状,本文的目标是评估AMS对感应磁化的影响,并探索从包含AMS影响的磁数据中提取结构信息的可能性。在这项工作中,我回顾了AMS的基本数学表达式,并通过欧拉参数的推导来检验旋转矩阵。我证明了矩阵可以通过在用户定义的坐标系中使用AMS的主方向直接形成。在综合AMS模型上的磁响应正演模拟表明,即使在低磁化率值下,感应磁化方向也可以明显地远离感应磁场方向。一系列的数值实验表明,直接从磁源数据中估计磁源参数可以恢复磁源信息,有助于识别不同的磁单元。不同旋转矩阵构造的对比为我们提供了旋转AMS张量进行建模的直接手段,而正演模拟结果表明,AMS影响数据的解释面临着与高磁化率或强剩余磁化自退磁情况类似的挑战。参数估计研究表明,在没有实验室测量帮助的情况下,通过AMS从磁数据中恢复结构信息是可能的。这项研究为未来的磁资料解释工作打开了大门
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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